More global randomness from less random local gates
October 31, 2024 Β· Declared Dead Β· π arXiv.org
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Authors
Ryotaro Suzuki, Hosho Katsura, Yosuke Mitsuhashi, Tomohiro Soejima, Jens Eisert, Nobuyuki Yoshioka
arXiv ID
2410.24127
Category
quant-ph: Quantum Computing
Cross-listed
cond-mat.str-el,
cs.IT
Citations
9
Venue
arXiv.org
Last Checked
5 months ago
Abstract
Random circuits giving rise to unitary designs are key tools in quantum information science and many-body physics. In this work, we investigate a class of random quantum circuits with a specific gate structure. Within this framework, we prove that one-dimensional structured random circuits with non-Haar random local gates can exhibit substantially more global randomness compared to Haar random circuits with the same underlying circuit architecture. In particular, we derive all the exact eigenvalues and eigenvectors of the second-moment operators for these structured random circuits under a solvable condition, by establishing a link to the Kitaev chain, and show that their spectral gaps can exceed those of Haar random circuits. Our findings have applications in improving circuit depth bounds for randomized benchmarking and the generation of approximate unitary 2-designs from shallow random circuits.
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